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AIRCRAFT POWER SYSTEM EVALUATIONS FOR A SOLID STATE LASER POWER CONVERSION APPLICATION

机译:固态激光功率转换应用中的飞机动力系统评估

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General thermodynamic analytical evaluations were performed to investigate the impact of technological improvements on mission effectiveness, weapon power generation and size of an aircraft based high-energy laser power system. The Aircraft Electrical Laser (AEL) power system essentially consists of six major components, the prime power source, the power generator, the power conditioner, the laser system including the gain medium, the beam processor and the thermal management system (TMS). The prime power source was essentially a 180 kW power stream provided by the cargo aircraft, which served as the platform for the AEL power system. The analysis was based on a 100 kW power output solid state laser power system and a notional mission profile with an engagement period of 680 seconds during which several duty cycle scenarios were considered. The entire mission consisted of the potential prosecution of four clusters with four targets in each cluster. Two primary power system architectures were evaluated, a baseline AEL power system architecture with current state-of-the-art technologies for all components and an advanced power system architecture based on future technological improvements to each of the six components. The investigations were extended to determine the effects of diode operating temperature, temperature gradients within the diode, duty cycle variations and environmental considerations such as the type of day, on the the mass and volume of the overall power system. Preliminary analysis based on current technologies and anticipated advanced technologies in a decade revealed that the overall mass of the power system could be brought down by 35% from the baseline near-term architecture to the conceptual far-term architecture. The impacts of diode operating temperature, diode temperature gradient, duty cycle (DC) and environmental conditions on the overall mass of the AEL power system for near-term operation, were evaluated. The general trend observed in most cases, was an increase in the mass of the TMS with a subsequent increase in the overall power system mass. There were several situations where the Ram Air Heat Exchanger (RAHX) could not handle the entire heat load and so thermal energy storage cells were designed to augment the RAHX to accommodate the total heat loads.
机译:进行了常规热力学分析评估,以研究技术改进对任务效率,武器发电和基于飞机的高能激光动力系统尺寸的影响。飞机电激光(AEL)电源系统主要由六个主要组件组成,即主要电源,发电机,功率调节器,包括增益介质的激光系统,光束处理器和热管理系统(TMS)。主要电源实质上是由货机提供的180 kW功率流,它是AEL电力系统的平台。该分析基于一个100 kW功率输出的固态激光功率系统和一个具有680秒接合时间的名义任务曲线,在此期间考虑了几种占空比情况。整个任务包括起诉四个小组,每个小组四个目标。评估了两个主要的电源系统架构,一个具有适用于所有组件的最新技术的基准AEL电源系统架构,以及一个基于对六个组件中每个组件的未来技术改进的高级电源系统架构。扩大了研究范围,以确定二极管工作温度,二极管内的温度梯度,占空比变化和环境因素(例如天数)对整个电源系统的质量和体积的影响。根据当前技术和十年来预期的先进技术进行的初步分析表明,电力系统的整体质量可以从基准近期架构降低到概念长期架构,可降低35%。评估了二极管工作温度,二极管温度梯度,占空比(DC)和环境条件对AEL电力系统近期运行总质量的影响。在大多数情况下,观察到的总体趋势是TMS的质量增加,而整个电力系统质量随之增加。在某些情况下,Ram空气热交换器(RAHX)无法处理整个热负荷,因此热能存储单元被设计为增加RAHX以适应总的热负荷。

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